Topology and Parametric Optimization-Based Design Processes for Lightweight Structures

Topology and Parametric Optimization are two of the most implemented material optimization approaches. However, it is not clear in the literature which optimization procedure, or possible combination of them, can lead to the best results based on material reduction and optimization time. In this pap...

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Main Authors: Evangelos Tyflopoulos, Martin Steinert
Format: Article
Language:English
Published: MDPI AG 2020-06-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/13/4496
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spelling doaj-e411b46ec1d24f54bc5441cf41249d412020-11-25T02:13:45ZengMDPI AGApplied Sciences2076-34172020-06-01104496449610.3390/app10134496Topology and Parametric Optimization-Based Design Processes for Lightweight StructuresEvangelos Tyflopoulos0Martin Steinert1Department of Mechanical and Industrial Engineering, Norwegian University of Science and Technology (NTNU), 7491 Trondheim, NorwayDepartment of Mechanical and Industrial Engineering, Norwegian University of Science and Technology (NTNU), 7491 Trondheim, NorwayTopology and Parametric Optimization are two of the most implemented material optimization approaches. However, it is not clear in the literature which optimization procedure, or possible combination of them, can lead to the best results based on material reduction and optimization time. In this paper, a quantitative comparison of different topology and parametric optimization design processes is conducted using three benchmark examples: A Hollow Plate, an L-Bracket, and a Messerschmitt–Bölkow–Blohm Beam (MBB-Beam). Ten different design processes that were developed in each case study resulted in 30 simulations in total. The design processes were clustered in three main design workflows: The Topology Optimization, the Parametric Optimization, and the Simultaneous Parametric and Topology Optimization. Their results were compared with respect to mass, stress, and time. The Simultaneous Parametric and Topology Optimization approach gave the lightest design solutions without compromising their initial strength but also increased the optimization time. The findings of this paper will help the designers in the pursuit of lightweight structures and will create the basis for the identification of the ideal material optimization procedure.https://www.mdpi.com/2076-3417/10/13/4496topology optimizationparametric optimizationfinite element analysisdesign
collection DOAJ
language English
format Article
sources DOAJ
author Evangelos Tyflopoulos
Martin Steinert
spellingShingle Evangelos Tyflopoulos
Martin Steinert
Topology and Parametric Optimization-Based Design Processes for Lightweight Structures
Applied Sciences
topology optimization
parametric optimization
finite element analysis
design
author_facet Evangelos Tyflopoulos
Martin Steinert
author_sort Evangelos Tyflopoulos
title Topology and Parametric Optimization-Based Design Processes for Lightweight Structures
title_short Topology and Parametric Optimization-Based Design Processes for Lightweight Structures
title_full Topology and Parametric Optimization-Based Design Processes for Lightweight Structures
title_fullStr Topology and Parametric Optimization-Based Design Processes for Lightweight Structures
title_full_unstemmed Topology and Parametric Optimization-Based Design Processes for Lightweight Structures
title_sort topology and parametric optimization-based design processes for lightweight structures
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-06-01
description Topology and Parametric Optimization are two of the most implemented material optimization approaches. However, it is not clear in the literature which optimization procedure, or possible combination of them, can lead to the best results based on material reduction and optimization time. In this paper, a quantitative comparison of different topology and parametric optimization design processes is conducted using three benchmark examples: A Hollow Plate, an L-Bracket, and a Messerschmitt–Bölkow–Blohm Beam (MBB-Beam). Ten different design processes that were developed in each case study resulted in 30 simulations in total. The design processes were clustered in three main design workflows: The Topology Optimization, the Parametric Optimization, and the Simultaneous Parametric and Topology Optimization. Their results were compared with respect to mass, stress, and time. The Simultaneous Parametric and Topology Optimization approach gave the lightest design solutions without compromising their initial strength but also increased the optimization time. The findings of this paper will help the designers in the pursuit of lightweight structures and will create the basis for the identification of the ideal material optimization procedure.
topic topology optimization
parametric optimization
finite element analysis
design
url https://www.mdpi.com/2076-3417/10/13/4496
work_keys_str_mv AT evangelostyflopoulos topologyandparametricoptimizationbaseddesignprocessesforlightweightstructures
AT martinsteinert topologyandparametricoptimizationbaseddesignprocessesforlightweightstructures
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